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Updated: May 24, 2026

Multi-parameter Measurement of the Permeability Transition Pore Opening in Isolated Mouse Heart Mitochondria
Published on: September 7, 2012
The effect of permeability transition pore opening on reactive oxygen species production in rat brain mitochondria
O V Akopova1, L Y Kolchynskayia, V Y Nosar'
1Bogomoletz Institute of Physiology, National Academy of Sciences of Ukraine, Kyiv.
Abstract:
The influence of mitochondrial permeability transition pore (MPTP) opening on reactive oxygen species (ROS) production in the rat brain mitochondria was studied. It was shown that ROS production is regulated differently by the rate of oxygen consumption and membrane potential, dependent on steady-state or non-equilibrium conditions. Under steady-state conditions, at constant rate of Ca2+-cycling and oxygen consumption, ROS production is potential-dependent and decreases with the inhibition of respiration and mitochondrial depolarization. The constant rate of ROS release is in accord with proportional dependence of the rate of ROS formation on that of oxygen consumption. On the contrary, transition to non-equilibrium state, due to the release of cytochrome c from mitochondria and progressive respiration inhibition, results in the loss of proportionality in the rate of ROS production on the rate of respiration and an exponential rise of ROS production with time, independent of membrane potential. Independent of steady-state or non-equilibrium conditions, the rate of ROS formation is controlled by the rate of potential-dependent uptake of Ca2+ which is the rate-limiting step in ROS production. It was shown that MPTP opening differently regulates ROS production, dependent on Ca2+ concentration. At low calcium MPTP opening results in the decrease in ROS production because of partial mitochondrial depolarization, in spite of sustained increase in oxygen consumption rate by a cyclosporine A-sensitive component due to simultaneous work of Ca2+-uniporter and MPTP as Ca2+-influx and efflux pathways. The effect of MPTP opening at low Ca2+ concentrations is similar to that of Ca2+-ionophore, A-23187. At high calcium MPTP opening results in the increase of ROS release due to the rapid transition to non-equilibrium state because of cytochrome c loss and progressive gating of electron flow in respiratory chain. Thus, under physiological conditions MPTP opening at low intracellular calcium could attenuate oxidative damage and the impairment of neuronal functions by diminishing ROS formation in mitochondria.
Insights
Mitochondrial permeability transition pore (MPTP) opening influences reactive oxygen species (ROS) production. At low calcium, MPTP opening reduces ROS, potentially protecting neurons from oxidative damage.
Area of Science:
- Mitochondrial biochemistry and cellular redox signaling.
Background:
- Mitochondrial permeability transition pore (MPTP) opening is implicated in cell death pathways.
- Reactive oxygen species (ROS) production is a key factor in oxidative stress and neuronal dysfunction.
Purpose of the Study:
- To investigate the influence of MPTP opening on ROS production in rat brain mitochondria.
- To elucidate the regulatory mechanisms of ROS production under varying mitochondrial conditions.
Main Methods:
- Studied ROS production in isolated rat brain mitochondria under steady-state and non-equilibrium conditions.
- Manipulated calcium (Ca2+) concentrations and utilized cyclosporine A and Ca2+-ionophore A-23187 to probe MPTP activity.
- Monitored oxygen consumption, membrane potential, and cytochrome c release.
Main Results:
- ROS production regulation depends on oxygen consumption, membrane potential, and steady-state vs. non-equilibrium conditions.
- At low calcium, MPTP opening decreases ROS production via partial depolarization, despite increased oxygen consumption.
- At high calcium, MPTP opening increases ROS release due to rapid transition to a non-equilibrium state with cytochrome c loss.
Conclusions:
- MPTP opening's effect on ROS production is concentration-dependent.
- Under physiological conditions, low calcium-induced MPTP opening may attenuate oxidative damage and preserve neuronal function by reducing mitochondrial ROS.
- Ca2+ uptake is the rate-limiting step for ROS formation, irrespective of MPTP opening or mitochondrial state.
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